systems and methods for compensating dipper swing control. One method includes, with at least one processor, determining a direction of compensation opposite a current swing direction of the dipper and applying the maximum available swing torque in the direction of compensation when an acceleration of the dipper is greater than a predetermined acceleration value. The method can also include determining a current state of the shovel and performing the above steps when the current state of the shovel is a swing-to-truck state or a return-to-tuck state. When the current state of the shovel is a dig-state, the method can include limiting the maximum available swing torque and allowing, with the at least one processor, swing torque to ramp up to the maximum available swing torque over a predetermined period of time when dipper is retracted to a predetermined crowd position.
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13. A system for compensating swing control of a dipper of a shovel, the system comprising:
a swing motor; and
a controller including at least one processor, the at least one processor configured to determine a current swing direction of the dipper,
determine a direction of compensation opposite the current swing direction of the dipper,
monitor an acceleration of the dipper,
detect an impact of the dipper with an object when the monitored acceleration is within a determined range of acceleration values;
modify a swing torque value for the swing motor; and
apply the modified swing torque value for the swing motor to slow a current swing speed of the dipper in response to detecting the impact of the dipper with the object.
24. A non-transitory computer-readable medium configured to execute, by a processor, a set of functions for compensating swing control of a dipper of a shovel, the shovel including a swing motor, the set of functions comprising:
determining a current swing direction of the dipper;
determining a direction of compensation opposite the current swing direction of the dipper;
monitoring an acceleration of the dipper;
detecting an impact of the dipper with an object when the monitored acceleration is within a determined range of acceleration values; and
modifying a swing torque value for the swing motor; and
applying the modified swing torque value for the swing motor to slow a current swing speed of the dipper in response to detecting the impact of the dipper with the object.
1. A method of compensating swing control of a dipper of a shovel, the shovel including a swing motor, the method comprising:
determining, by at least one processor, a current swing direction of the dipper;
determining, by the at least one processor, a direction of compensation opposite the current swing direction of the dipper;
monitoring, by the at least one processor, an acceleration of the dipper;
detecting, by the at least one processor, an impact of the dipper with an object when the monitored acceleration is within a determined range of acceleration values;
modifying, by the at least one processor, a swing torque value for the swing motor; and
applying, by the at least one processor, the modified swing torque value for the swing motor to slow a current swing speed of the dipper in response to detecting the impact of the dipper with the object.
2. The method of
3. The method of
resetting the modified swing torque value for the swing motor in response to the current swing speed dropping below a predetermined speed value.
4. The method of
5. The method of
starting a timer when the monitored acceleration is within the determined range of acceleration values; and
resetting the modified swing torque value for the swing motor in response to the timer reaching a setpoint.
6. The method of
7. The method of
8. The method of
applying, by the at least one processor, the maximum available swing torque in the direction of compensation.
9. The method of
modifying the maximum available swing torque before applying the maximum available swing torque in the direction of compensation.
10. The method of
11. The method of
12. The method of
applying, by the at least one processor, the percentage of the maximum available swing torque in the direction of compensation.
14. The system of
reset the modified swing torque value for the swing motor in response to the current swing speed dropping below a predetermined speed value.
15. The system of
16. The system of
start a timer when the monitored acceleration is within the determined range of acceleration values; and
reset the modified swing torque value for the swing motor in response to the timer reaching a setpoint.
18. The system of
19. The system of
apply, by the at least one processor, the maximum available swing torque in the direction of compensation.
20. The system of
modify the maximum available swing torque before applying the maximum available swing torque in the direction of compensation.
21. The system of
22. The system of
23. The system of
apply the percentage of the maximum available swing torque in the direction of compensation.
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This application is a continuation of U.S. patent application Ser. No. 14/929,167, filed Oct. 30, 2015, which is a divisional application of U.S. patent application Ser. No. 13/843,532, filed Mar. 15, 2013, which claims priority to U.S. Provisional Patent Application No. 61/611,682, filed Mar. 16, 2012, the entire content of each of which is incorporated herein by reference.
This invention relates to monitoring performance of an industrial machine, such as an electric rope or power shovel, and automatically adjusting the performance.
Industrial machines, such as electric rope or power shovels, draglines, etc., are used to execute digging operations to remove material from, for example, a bank of a mine. An operator controls a rope shovel during a dig operation to load a dipper with materials. The operator deposits the materials in the dipper into a hopper or a truck. After unloading the materials, the dig cycle continues and the operator swings the dipper back to the bank to perform additional digging. Some operators improperly swing the dipper into the bank at a high rate of speed, which, although slows and stops the dipper for a dig operation, can damage the dipper and other components of the shovel, such as the racks, handles, saddle blocks, shipper shaft, and boom. The dipper can also impact other objects during a dig cycle (e.g., the hopper or truck, the bank, other pieces of machinery located around the shovel, etc.), which can damage the dipper or other components.
Accordingly, embodiments of the invention automatically control the swing of the dipper to reduce impact and stresses caused by impacts of the dipper with objects located around the shovel, such as the bank, the ground, and the hopper. For example, a controller monitors operation of the dipper after the dipper has been unloaded and is returned to the bank for a subsequent dig operation. The controller monitors various aspects of the dipper swing, such as speed, acceleration, and reference indicated by the operator controls (e.g., direction and force applied to operator controls, such as a joystick). The controller uses the monitored information to determine if the dipper is swinging too fast where the dipper will impact the bank at an unreasonable speed. In this situation, the controller uses motor torque to slow the swing of the dipper when it detects high impact with the bank. In particular, the controller applies motor torque in the opposite direction of the movement of the dipper, which counteracts the speed of the dipper and decelerates the swing speed.
In particular, one embodiment of the invention provides a method of compensating swing of a dipper of a shovel. The method includes determining, by at least one processor, a direction of compensation opposite a current swing direction of the dipper, and applying, by the at least one processor, the maximum available swing torque in the direction of compensation opposite the current swing direction of the dipper when an acceleration of the dipper is greater than a predetermined acceleration value.
Another embodiment of the invention provides a system for compensating swing of a dipper of a shovel. The system includes a controller including at least one processor. The at least one processor is configured to limit the maximum available swing torque, determine a crowd position of the dipper, and restrict the swing torque ramp up to the limited maximum available swing torque over a predetermined period of time after the dipper reaches a predetermined crowd position.
Other aspects of the invention will become apparent by consideration of the detailed description and accompanying drawings.
Before any embodiments of the invention are explained in detail, it is to be understood that the invention is not limited in its application to the details of construction and the arrangement of components set forth in the following description or illustrated in the following drawings. The invention is capable of other embodiments and of being practiced or of being carried out in various ways. Also, it is to be understood that the phraseology and terminology used herein is for the purpose of description and should not be regarded as limited. The use of “including,” “comprising” or “having” and variations thereof herein is meant to encompass the items listed thereafter and equivalents thereof as well as additional items. The terms “mounted,” “connected” and “coupled” are used broadly and encompass both direct and indirect mounting, connecting and coupling. Further, “connected” and “coupled” are not restricted to physical or mechanical connections or couplings, and can include electrical connections or couplings, whether direct or indirect. Also, electronic communications and notifications may be performed using any known means including direct connections, wireless connections, etc.
It should also be noted that a plurality of hardware and software based devices, as well as a plurality of different structural components may be used to implement the invention. In addition, it should be understood that embodiments of the invention may include hardware, software, and electronic components or modules that, for purposes of discussion, may be illustrated and described as if the majority of the components were implemented solely in hardware. However, one of ordinary skill in the art, and based on a reading of this detailed description, would recognize that, in at least one embodiment, the electronic based aspects of the invention may be implemented in software (e.g., stored on non-transitory computer-readable medium) executable by one or more processors. As such, it should be noted that a plurality of hardware and software based devices, as well as a plurality of different structural components may be utilized to implement the invention. Furthermore, and as described in subsequent paragraphs, the specific mechanical configurations illustrated in the drawings are intended to exemplify embodiments of the invention and that other alternative mechanical configurations are possible. For example, “controllers” described in the specification can include standard processing components, such as one or more processors, one or more computer-readable medium modules, one or more input/output interfaces, and various connections (e.g., a system bus) connecting the components.
The shovel 100 also includes taut suspension cables 150 coupled between the base 110 and boom 130 for supporting the boom 130; a hoist cable 155 attached to a winch (not shown) within the base 110 for winding the cable 155 to raise and lower the dipper 140; and a dipper door cable 160 attached to another winch (not shown) for opening the door 145 of the dipper 140. In some instances, the shovel 100 is a P&H® 4100 series shovel produced by Joy Global, although the shovel 100 can be another type or model of mining excavator.
When the tracks 105 of the mining shovel 100 are static, the dipper 140 is operable to move based on three control actions, hoist, crowd, and swing. Hoist control raises and lowers the dipper 140 by winding and unwinding the hoist cable 155. Crowd control extends and retracts the position of the handle 135 and dipper 140. In one embodiment, the handle 135 and dipper 140 are crowded by using a rack and pinion system. In another embodiment, the handle 135 and dipper 140 are crowded using a hydraulic drive system. The swing control swivels the dipper 140 relative to the swing axis 125. During operation, an operator controls the dipper 140 to dig earthen material from a dig location, swing the dipper 140 to a dump location, release the door 145 to dump the earthen material, and tuck the dipper 140, which causes the door 145 to close, while swinging the dipper 140 to the same or another dig location.
As described above in the summary section, when the shovel 100 swings the dipper 140 back to the digging position, the bank 215 should not be used to decelerate and stop the dipper 140. Therefore, the shovel 100 includes a controller that may compensate control of the dipper 140 to ensure the dipper 140 swings at a proper speed and is decelerated as it nears the bank 215 or other objects. The controller can include combinations of hardware and software operable to, among other things, monitor operation of the shovel 100 and compensate control the dipper 140 if applicable.
A controller 300 according to one embodiment of the invention is illustrated in
The computer-readable media 355 stores program instructions and data, and the controller 300 is configured to retrieve from the media 355 and execute, among other things, the instructions to perform the control processes and methods described herein. The input/output interface 365 exchanges data between the controller 300 and external systems, networks, and/or devices and receives data from external systems, networks, and/or devices. The input/output interface 365 can store data received from external sources to the media 355 and/or provides the data to the processing unit 350.
As illustrated in
The controller 300 is also in communication with a plurality of sensors 380 to monitor the location, movement, and status of the dipper 140. The plurality of sensors 380 can include one or more crowd sensors, swing sensors, hoist sensors, and/or shovel sensors. The crowd sensors indicate a level of extension or retraction of the dipper 140. The swing sensors indicate a swing angle of the handle 135. The hoist sensors indicate a height of the dipper 140 based on the hoist cable 155 position. The shovel sensors 380 indicate whether the dipper door 145 is open (for dumping) or closed. The shovel sensors 380 may also include one or more weight sensors, acceleration sensors, and/or inclination sensors to provide additional information to the controller 300 about the load within the dipper 140. In some embodiments, one or more of the crowd sensors, swing sensors, and hoist sensors include resolvers or tachometers that indicate an absolute position or relative movement of the motors used to move the dipper 140 (e.g., a crowd motor, a swing motor, and/or a hoist motor). For instance, as the hoist motor rotates to wind the hoist cable 155 to raise the dipper 140, the hoist sensors output a digital signal indicating an amount of rotation of the hoist and a direction of movement to indicate relative movement of the dipper 140. The controller 300 translates these outputs into a position (e.g., height), speed, and/or acceleration of the dipper 140.
As noted above, the controller 300 is configured to retrieve instructions from the media 355 and execute the instruction to perform various control methods relating to the shovel 100. For example,
The methods illustrated in
As shown in
The controller 300 then calculates actual swing acceleration (at 516). If the value of the actual acceleration (e.g., the value of a negative acceleration) is greater than a predetermined value α (e.g., indicating that the dipper 140 struck an object) (at 518), the controller 300 compensates swing control of the dipper 140. In particular, the controller 300 can increase the maximum available swing torque (e.g., up to approximately 200%) and apply the increased available torque (e.g., 100% of the increased torque) in the compensation direction (at 520). It should be understood that in some embodiments, the controller 300 applies the maximum available torque limit without initially increasing the limit. After the swing speed drops to or below a predetermined value Y (e.g., approximately 0 rpm to approximately 300 rpm) (at 522), the controller 300 stops swing compensation and the dipper 140 returns to its default or normal control (e.g., operator control of the dipper 140 is not compensated by the controller 300).
In the return-to-tuck state of Option #1 (at 524), the controller 300 performs a similar function as the swing-to-truck state of Option #1. However, the predetermined value α that the controller 300 compares the current swing acceleration (at 518) against is adjusted to account for the dipper 140 being empty rather than full as during the swing-to-truck state.
As shown in
As illustrated in
After calculating the predicted acceleration (at 558), the controller 300 calculates the actual swing acceleration of the dipper 140 (e.g., a negative acceleration) (at 560). If the value of the actual acceleration is more than a predetermined percentage less than the predicted acceleration (e.g., more than approximately 10% to approximately 30% less than the predicted acceleration, which indicates that the dipper 140 struck an object) (at 562), the controller 300 starts swing control compensation. In particular, to compare the calculated predicted acceleration and the actual acceleration, the controller 300 activates Subroutine #1 (at 544), which, as noted above, results in one of three possible responses (see
As shown in
As illustrated in
If the swing speed is greater than the threshold (at 572), the controller determines a current swing direction to determine a compensation direction (at 576). The controller 300 then calculates a predicted swing acceleration based on a swing torque reference, a current dipper payload, and, optionally, a dipper position (at 578). In some embodiments, there are two options for calculating the predicted acceleration. In one option, the controller 300 assumes the dipper 140 is in a standard position with vertical ropes. In another option, the controller 300 calculates the predicted acceleration based dipper position (e.g., radius, height, etc.) and resulting inertia of the dipper 140.
After calculating the predicted acceleration (at 578), the controller 300 calculates an actual swing acceleration (e.g., a negative acceleration) (at 580) and determines if the value of the actual acceleration is more than a predetermined percentage less than the predicted acceleration (e.g., more than approximately 10% to approximately 30% less than the predicted acceleration, which indicates that the dipper 140 struck an object) (at 582). If so, the controller 300 activates Subroutine #1 (at 544). See
As illustrated in
When the value of the actual acceleration is not more than a predetermined percentage less than the predicted acceleration (at 600), the controller 300 determines if a timer is running (at 606). If the timer is running and has reached a predetermined time period (e.g., approximately 100 milliseconds to approximately 2 seconds) (at 608), the controller 300 stops the timer (at 610) and resets the reference torque (at 612).
As illustrated in
In Subroutine 1C (see
As shown in
In Subroutine 2C, the controller 300 also monitors an inclinometer included in the shovel (at 714) and calculates the swing motoring torque limit level based on the shovel angle (at 716). In particular, the greater the angle of the shovel, the higher the torque limit level set by the controller 300.
Thus, embodiments of the invention relate to compensating dipper swing control to mitigate impacts between the dipper and a bank, the ground, a mobile crusher, a haul truck, etc. It should be understood that the numbering of the options and subroutines were provided for ease of description and are not intended to indicate importance or preference. Also, it should be understood that the controller 300 can perform additional functionality. In addition, the predetermined thresholds and values described in the present application may depend on the shovel 100, the environment where the shovel 100 is digging, and previous or current performance of the shovel 100. Therefore, any example values for these thresholds and values are provided as an example only and may vary.
Various features and advantages of the invention are set forth in the following claims.
Linstroth, Michael, Colwell, Joseph, Emerson, Mark
Patent | Priority | Assignee | Title |
11761172, | Mar 16 2012 | Joy Global Surface Mining Inc | Automated control of dipper swing for a shovel |
11939748, | Mar 29 2021 | Joy Global Surface Mining Inc | Virtual track model for a mining machine |
11987961, | Mar 29 2021 | Joy Global Surface Mining Inc | Virtual field-based track protection for a mining machine |
Patent | Priority | Assignee | Title |
3207339, | |||
3642159, | |||
3648029, | |||
3934126, | Dec 28 1973 | Control device for a dragline excavator | |
3993158, | Jan 03 1975 | O & K Orenstein & Koppel Aktiengesellschaft | Device for limiting in a contact-free manner the movement of hydraulically operable mechanical parts |
4104518, | Dec 23 1975 | Siemens Aktiengesellschaft | Shut-down apparatus for conveyor belts in underground mines |
4370713, | Aug 11 1980 | General Electric Co. | Anti-tightline control system and method for dragline type equipment |
4398851, | Dec 02 1980 | Siemens Aktiengesellschaft | Arrangement for controlling advancing timbering in underground mining |
5027049, | Jan 31 1989 | MHE TECHNOLOGIES, INC | Method for increasing the speed of an alternating current motor |
5404661, | May 10 1994 | Caterpillar Inc | Method and apparatus for determining the location of a work implement |
5442868, | Jun 30 1993 | Volvo Construction Equipment Holding Sweden AB | Method for controlling operation of an excavator having electronic micro-module |
5493798, | Jun 15 1994 | Caterpillar Inc. | Teaching automatic excavation control system and method |
5528498, | Jun 20 1994 | Caterpillar Inc. | Laser referenced swing sensor |
5548516, | Dec 11 1989 | Caterpillar Inc. | Multi-tasked navigation system and method for an autonomous land based vehicle |
5701691, | Jun 01 1994 | Hitachi Construction Machinery Co., Ltd. | Region limiting excavation control system for construction machine |
5717628, | Mar 04 1996 | GLOBALFOUNDRIES Inc | Nitride cap formation in a DRAM trench capacitor |
5748097, | Feb 28 1997 | CNH America LLC; BLUE LEAF I P , INC | Method and apparatus for storing the boom of a work vehicle |
5752333, | Aug 11 1995 | Hitachi Construction Machinery Co., Ltd. | Area limiting excavation control system for construction machines |
5835874, | Apr 28 1994 | Hitachi Construction Machinery Co., Ltd. | Region limiting excavation control system for construction machine |
5903988, | Dec 24 1993 | Komatsu Ltd. | Control device for use in a working machine having three or more arms for controlling path of movement of a tool mounted on one of the arms |
5908458, | Feb 06 1997 | Carnegie Mellon Technical Transfer | Automated system and method for control of movement using parameterized scripts |
5937292, | Mar 04 1996 | GLOBALFOUNDRIES Inc | Nitride cap formation in a DRAM trench capacitor |
5953977, | Dec 19 1997 | Carnegie Mellon University | Simulation modeling of non-linear hydraulic actuator response |
5968103, | Jan 06 1997 | Caterpillar Inc. | System and method for automatic bucket loading using crowd factors |
5978504, | Feb 19 1997 | Carnegie Mellon University | Fast planar segmentation of range data for mobile robots |
6025686, | Jul 23 1997 | Harnischfeger Technologies, Inc | Method and system for controlling movement of a digging dipper |
6058344, | Feb 06 1997 | Carnegie Mellon University | Automated system and method for control of movement using parameterized scripts |
6072127, | May 21 1998 | General Electric Company | Indirect suspended load weighing apparatus |
6076030, | Oct 14 1998 | Carnegie Mellon University | Learning system and method for optimizing control of autonomous earthmoving machinery |
6085583, | May 24 1999 | Carnegie Mellon University | System and method for estimating volume of material swept into the bucket of a digging machine |
6108949, | Dec 19 1997 | Carnegie Mellon University | Method and apparatus for determining an excavation strategy |
6167336, | May 18 1998 | Carnegie Mellon University | Method and apparatus for determining an excavation strategy for a front-end loader |
6223110, | Dec 19 1997 | Carnegie Mellon University | Software architecture for autonomous earthmoving machinery |
6225574, | Nov 06 1998 | Joy Global Surface Mining Inc | Load weighing system for a heavy machinery |
6247538, | Sep 13 1996 | Komatsu Ltd. | Automatic excavator, automatic excavation method and automatic loading method |
6272413, | Mar 19 1999 | Kabushiki Kaisha Aichi Corporation | Safety system for boom-equipped vehicle |
6317669, | Oct 28 1999 | Hitachi Construction Machinery Co. Ltd. | Automatically operated shovel |
6363173, | Dec 19 1997 | Carnegie Mellon University | Incremental recognition of a three dimensional object |
6363632, | Oct 09 1998 | Carnegie Mellon University | System for autonomous excavation and truck loading |
6466850, | Aug 09 2000 | Joy Global Surface Mining Inc | Device for reacting to dipper stall conditions |
6732458, | Mar 18 1998 | Hitachi Construction Machinery Co., Ltd. | Automatically operated shovel and stone crushing system comprising same |
6885930, | Jul 31 2003 | Siemens Large Drives LLC | System and method for slip slide control |
7024806, | Jan 12 2004 | Joy Global Surface Mining Inc | Auxiliary assembly for reducing unwanted movement of a hoist rope |
7034476, | Aug 07 2003 | Siemens Large Drives LLC | System and method for providing automatic power control and torque boost |
7126299, | Jul 31 2003 | Siemens Large Drives LLC | Enhanced system and method for controlling discharge of electric energy from machines |
7181370, | Aug 26 2003 | Siemens Large Drives LLC | System and method for remotely obtaining and managing machine data |
7227273, | May 27 2004 | Innomotics GmbH | High frequency bus method |
7307399, | Sep 14 2004 | Siemens Large Drives LLC | Systems for managing electrical power |
7308352, | Aug 07 2003 | Siemens Large Drives LLC | Enhanced braking system and method |
7375490, | Sep 14 2004 | Siemens Large Drives LLC | Methods for managing electrical power |
7385372, | May 27 2004 | Innomotics GmbH | Auxiliary bus system |
7398012, | May 12 2004 | Siemens Large Drives LLC | Method for powering mining equipment |
7406399, | Aug 26 2003 | Siemens Large Drives LLC | System and method for distributed reporting of machine performance |
7479757, | May 27 2004 | Siemens Large Drives LLC | System and method for a cooling system |
7574821, | Sep 01 2004 | Siemens Large Drives LLC | Autonomous loading shovel system |
7578079, | Sep 01 2004 | Siemens Large Drives LLC | Method for an autonomous loading shovel |
7622884, | Sep 14 2004 | Siemens Large Drives LLC | Methods for managing electrical power |
7726048, | Nov 30 2006 | Caterpillar Inc. | Automated machine repositioning in an excavating operation |
7734397, | Dec 28 2005 | Wildcat Technologies, LLC | Method and system for tracking the positioning and limiting the movement of mobile machinery and its appendages |
7751927, | Apr 17 2001 | Sandvik Mining and Construction Oy | Method and apparatus for automatic loading of dumper |
7752779, | Apr 30 2007 | Deere & Company | Automated control of boom or attachment for work vehicle to a preset position |
7832126, | May 17 2007 | Siemens Large Drives LLC | Systems, devices, and/or methods regarding excavating |
7979182, | Feb 01 2006 | HITACHI CONSTRUCTION MACHINERY CO , LTD | Swing drive system for construction machine |
8620533, | Aug 30 2011 | Joy Global Surface Mining Inc | Systems, methods, and devices for controlling a movement of a dipper |
8756839, | Feb 01 2011 | Joy Global Surface Mining Inc | Rope shovel with curved boom |
8768579, | Apr 14 2011 | Joy Global Surface Mining Inc | Swing automation for rope shovel |
8972120, | Apr 03 2012 | Joy Global Surface Mining Inc | Extended reach crowd control for a shovel |
8984779, | Jan 31 2012 | Joy Global Surface Mining Inc | Shovel with passive tilt control |
9043098, | Oct 05 2012 | Komatsu Ltd | Display system of excavating machine and excavating machine |
9206587, | Mar 16 2012 | Joy Global Surface Mining Inc | Automated control of dipper swing for a shovel |
9260834, | Jan 21 2014 | Joy Global Surface Mining Inc | Controlling a crowd parameter of an industrial machine |
9315967, | Apr 14 2011 | Joy Global Surface Mining Inc | Swing automation for rope shovel |
9361270, | Nov 29 2011 | Joy Global Surface Mining Inc | Dynamic control of an industrial machine |
9745721, | Mar 16 2012 | Joy Global Surface Mining Inc | Automated control of dipper swing for a shovel |
20060265914, | |||
20070240341, | |||
20080134547, | |||
20080201108, | |||
20080212344, | |||
20080282583, | |||
20090055056, | |||
20090218112, | |||
20090228394, | |||
20090229101, | |||
20090272109, | |||
20100010714, | |||
20100036645, | |||
20100076612, | |||
20100109417, | |||
20100185416, | |||
20100223008, | |||
20100243593, | |||
20100283675, | |||
20110029206, | |||
20110073392, | |||
20110106384, | |||
20110197680, | |||
20110301817, | |||
20110313608, | |||
20110314802, | |||
20120101693, | |||
20120263566, | |||
20120277961, | |||
20120283919, | |||
20130051963, | |||
20130066527, | |||
20130096782, | |||
20130110460, | |||
20130174556, | |||
20130195595, | |||
20130195597, | |||
20130261885, | |||
20130298544, | |||
20130311054, | |||
20130317709, | |||
20130325269, | |||
20140032059, | |||
20140084831, | |||
20140191690, | |||
20140338235, | |||
20150240458, | |||
20150275471, | |||
20150292185, | |||
20150308073, | |||
20160017573, | |||
20160348343, | |||
CN101575862, | |||
CN101614024, | |||
CN101680204, | |||
CN1161069, | |||
CN1891915, | |||
CN201581425, | |||
CN202644604, | |||
CN202899186, | |||
DE102008010461, | |||
DE19856610, | |||
EP3287, | |||
EP36384, | |||
EP53270, | |||
EP114024, | |||
EP402517, | |||
EP402518, | |||
EP412395, | |||
EP412398, | |||
EP412399, | |||
EP412400, | |||
EP412402, | |||
EP414926, | |||
EP428778, | |||
EP428783, | |||
EP442344, | |||
EP535765, | |||
EP907805, | |||
EP912806, | |||
EP2080730, | |||
JP19780157033, | |||
JP2000192514, | |||
JP2009068197, | |||
JP9291560, | |||
SU1079780, | |||
SU1208135, | |||
SU1416624, | |||
SU1656084, | |||
SU643597, | |||
WO4240, | |||
WO140824, | |||
WO2092921, | |||
WO2005012028, | |||
WO2005118329, | |||
WO2006028938, | |||
WO2007057305, | |||
WO2008144043, | |||
WO2009024405, | |||
WO2009086601, | |||
WO2009131635, | |||
WO2010033959, | |||
WO2010132065, | |||
WO2010149857, | |||
WO9746763, | |||
WO9746767, | |||
WO9847793, | |||
WO9902788, |
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Sep 13 2013 | COLWELL, JOSEPH | Harnischfeger Technologies, Inc | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 043446 | /0300 | |
Sep 13 2013 | EMERSON, MARK | Harnischfeger Technologies, Inc | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 043446 | /0300 | |
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